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Saving train state of step 1000
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#!/usr/bin/env bash
accelerate launch run_distillation.py \
--model_name_or_path "distil-whisper/distil-large-v3" \
--teacher_model_name_or_path "openai/whisper-large-v3" \
--train_dataset_name "litus-ai/common_voice_16_1_it_pseudo_labelled_whisper_large_v3+litus-ai/google_fleurs_it_pseudo_labelled_whisper_large_v3" \
--train_split_name "train+train" \
--train_dataset_config_name "it+it_it" \
--text_column_name "sentence+transcription" \
--eval_dataset_name "litus-ai/google_fleurs_it_pseudo_labelled_whisper_large_v3" \
--eval_split_name "test" \
--eval_dataset_config_name "it_it" \
--eval_text_column_name "transcription" \
--eval_steps 1000 \
--save_steps 1000 \
--warmup_steps 500 \
--learning_rate 0.0001 \
--lr_scheduler_type "constant_with_warmup" \
--timestamp_probability 0.2 \
--condition_on_prev_probability 0.2 \
--language "it" \
--task "transcribe" \
--logging_steps 25 \
--save_total_limit 1 \
--max_steps 25000 \
--wer_threshold 20 \
--per_device_train_batch_size 16 \
--per_device_eval_batch_size 16 \
--dataloader_num_workers 8 \
--preprocessing_num_workers 8 \
--ddp_timeout 7200 \
--dtype "bfloat16" \
--attn_implementation "sdpa" \
--output_dir "./" \
--do_train \
--do_eval \
--gradient_checkpointing \
--overwrite_output_dir \
--predict_with_generate \
--freeze_encoder \
--freeze_embed_positions \
--streaming False \
--push_to_hub